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Centrosome and spindle assembly checkpoint loss leads to neural apoptosis and reduced brain size

机译:中心体和纺锤体装配检查点丢失会导致神经细胞凋亡并减少大脑大小

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Accurate mitotic spindle assembly is critical for mitotic fidelity and organismal development. Multiple processes coordinate spindle assembly and chromosome segregation. Two key components are centrosomes and the spindle assembly checkpoint (SAC), and mutations affecting either can cause human microcephaly. In vivo studies in Drosophila melanogaster found that loss of either component alone is well tolerated in the developing brain, in contrast to epithelial tissues of the imaginal discs. In this study, we reveal that one reason for that tolerance is the compensatory relationship between centrosomes and the SAC. In the absence of both centrosomes and the SAC, brain cells, including neural stem cells, experience massive errors in mitosis, leading to increased cell death, which reduces the neural progenitor pool and severely disrupts brain development. However, our data also demonstrate that neural cells are much more tolerant of aneuploidy than epithelial cells. Our data provide novel insights into the mechanisms by which different tissues manage genome stability and parallels with human microcephaly.
机译:准确的有丝分裂纺锤体组装对于有丝分裂保真度和机体发育至关重要。多个过程协调纺锤体组装和染色体分离。中心体和纺锤体装配检查点(SAC)是两个关键组成部分,影响其中任一的突变都可能导致人的小头畸形。在果蝇中的体内研究发现,与假想盘的上皮组织相比,发育中的大脑对任一成分的单独损失都具有良好的耐受性。在这项研究中,我们揭示了这种耐受性的一个原因是中心体与SAC之间的补偿关系。在既没有中心体又没有SAC的情况下,包括神经干细胞在内的脑细胞在有丝分裂中会经历大量错误,导致细胞死亡增加,从而减少了神经祖细胞并严重破坏了大脑的发育。但是,我们的数据还表明,神经细胞比上皮细胞对非整倍性的耐受性要高得多。我们的数据为不同组织管理基因组稳定性和与人类小头畸形相似的机制提供了新颖的见解。

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